EP3040168A1 - Load determination method - Google Patents
Load determination method Download PDFInfo
- Publication number
- EP3040168A1 EP3040168A1 EP15191579.0A EP15191579A EP3040168A1 EP 3040168 A1 EP3040168 A1 EP 3040168A1 EP 15191579 A EP15191579 A EP 15191579A EP 3040168 A1 EP3040168 A1 EP 3040168A1
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- EP
- European Patent Office
- Prior art keywords
- state
- load
- leg part
- user
- determined
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
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- 238000000034 method Methods 0.000 title claims abstract description 46
- 210000002414 leg Anatomy 0.000 description 88
- 238000001514 detection method Methods 0.000 description 37
- 238000010586 diagram Methods 0.000 description 19
- 230000007423 decrease Effects 0.000 description 4
- 230000005021 gait Effects 0.000 description 4
- 210000000629 knee joint Anatomy 0.000 description 3
- 238000005070 sampling Methods 0.000 description 2
- OMNJOVSKSAJJAV-UHFFFAOYSA-N [FH+]C[IH]CC[IH]C(CC(C1)I)C1I Chemical compound [FH+]C[IH]CC[IH]C(CC(C1)I)C1I OMNJOVSKSAJJAV-UHFFFAOYSA-N 0.000 description 1
- 238000004519 manufacturing process Methods 0.000 description 1
- 238000012986 modification Methods 0.000 description 1
- 230000004048 modification Effects 0.000 description 1
- 230000002093 peripheral effect Effects 0.000 description 1
- 210000000689 upper leg Anatomy 0.000 description 1
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Classifications
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B5/00—Measuring for diagnostic purposes; Identification of persons
- A61B5/103—Detecting, measuring or recording devices for testing the shape, pattern, colour, size or movement of the body or parts thereof, for diagnostic purposes
- A61B5/1036—Measuring load distribution, e.g. podologic studies
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61H—PHYSICAL THERAPY APPARATUS, e.g. DEVICES FOR LOCATING OR STIMULATING REFLEX POINTS IN THE BODY; ARTIFICIAL RESPIRATION; MASSAGE; BATHING DEVICES FOR SPECIAL THERAPEUTIC OR HYGIENIC PURPOSES OR SPECIFIC PARTS OF THE BODY
- A61H1/00—Apparatus for passive exercising; Vibrating apparatus; Chiropractic devices, e.g. body impacting devices, external devices for briefly extending or aligning unbroken bones
- A61H1/02—Stretching or bending or torsioning apparatus for exercising
- A61H1/0237—Stretching or bending or torsioning apparatus for exercising for the lower limbs
- A61H1/0255—Both knee and hip of a patient, e.g. in supine or sitting position, the feet being moved together in a plane substantially parallel to the body-symmetrical plane
- A61H1/0262—Walking movement; Appliances for aiding disabled persons to walk
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61F—FILTERS IMPLANTABLE INTO BLOOD VESSELS; PROSTHESES; DEVICES PROVIDING PATENCY TO, OR PREVENTING COLLAPSING OF, TUBULAR STRUCTURES OF THE BODY, e.g. STENTS; ORTHOPAEDIC, NURSING OR CONTRACEPTIVE DEVICES; FOMENTATION; TREATMENT OR PROTECTION OF EYES OR EARS; BANDAGES, DRESSINGS OR ABSORBENT PADS; FIRST-AID KITS
- A61F2/00—Filters implantable into blood vessels; Prostheses, i.e. artificial substitutes or replacements for parts of the body; Appliances for connecting them with the body; Devices providing patency to, or preventing collapsing of, tubular structures of the body, e.g. stents
- A61F2/50—Prostheses not implantable in the body
- A61F2/68—Operating or control means
- A61F2/70—Operating or control means electrical
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61H—PHYSICAL THERAPY APPARATUS, e.g. DEVICES FOR LOCATING OR STIMULATING REFLEX POINTS IN THE BODY; ARTIFICIAL RESPIRATION; MASSAGE; BATHING DEVICES FOR SPECIAL THERAPEUTIC OR HYGIENIC PURPOSES OR SPECIFIC PARTS OF THE BODY
- A61H3/00—Appliances for aiding patients or disabled persons to walk about
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B25—HAND TOOLS; PORTABLE POWER-DRIVEN TOOLS; MANIPULATORS
- B25J—MANIPULATORS; CHAMBERS PROVIDED WITH MANIPULATION DEVICES
- B25J13/00—Controls for manipulators
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B25—HAND TOOLS; PORTABLE POWER-DRIVEN TOOLS; MANIPULATORS
- B25J—MANIPULATORS; CHAMBERS PROVIDED WITH MANIPULATION DEVICES
- B25J13/00—Controls for manipulators
- B25J13/08—Controls for manipulators by means of sensing devices, e.g. viewing or touching devices
- B25J13/085—Force or torque sensors
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B25—HAND TOOLS; PORTABLE POWER-DRIVEN TOOLS; MANIPULATORS
- B25J—MANIPULATORS; CHAMBERS PROVIDED WITH MANIPULATION DEVICES
- B25J9/00—Programme-controlled manipulators
- B25J9/0006—Exoskeletons, i.e. resembling a human figure
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61F—FILTERS IMPLANTABLE INTO BLOOD VESSELS; PROSTHESES; DEVICES PROVIDING PATENCY TO, OR PREVENTING COLLAPSING OF, TUBULAR STRUCTURES OF THE BODY, e.g. STENTS; ORTHOPAEDIC, NURSING OR CONTRACEPTIVE DEVICES; FOMENTATION; TREATMENT OR PROTECTION OF EYES OR EARS; BANDAGES, DRESSINGS OR ABSORBENT PADS; FIRST-AID KITS
- A61F2/00—Filters implantable into blood vessels; Prostheses, i.e. artificial substitutes or replacements for parts of the body; Appliances for connecting them with the body; Devices providing patency to, or preventing collapsing of, tubular structures of the body, e.g. stents
- A61F2/50—Prostheses not implantable in the body
- A61F2/60—Artificial legs or feet or parts thereof
- A61F2002/607—Lower legs
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- A—HUMAN NECESSITIES
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- A61F—FILTERS IMPLANTABLE INTO BLOOD VESSELS; PROSTHESES; DEVICES PROVIDING PATENCY TO, OR PREVENTING COLLAPSING OF, TUBULAR STRUCTURES OF THE BODY, e.g. STENTS; ORTHOPAEDIC, NURSING OR CONTRACEPTIVE DEVICES; FOMENTATION; TREATMENT OR PROTECTION OF EYES OR EARS; BANDAGES, DRESSINGS OR ABSORBENT PADS; FIRST-AID KITS
- A61F2/00—Filters implantable into blood vessels; Prostheses, i.e. artificial substitutes or replacements for parts of the body; Appliances for connecting them with the body; Devices providing patency to, or preventing collapsing of, tubular structures of the body, e.g. stents
- A61F2/50—Prostheses not implantable in the body
- A61F2/76—Means for assembling, fitting or testing prostheses, e.g. for measuring or balancing, e.g. alignment means
- A61F2002/7615—Measuring means
- A61F2002/7635—Measuring means for measuring force, pressure or mechanical tension
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61H—PHYSICAL THERAPY APPARATUS, e.g. DEVICES FOR LOCATING OR STIMULATING REFLEX POINTS IN THE BODY; ARTIFICIAL RESPIRATION; MASSAGE; BATHING DEVICES FOR SPECIAL THERAPEUTIC OR HYGIENIC PURPOSES OR SPECIFIC PARTS OF THE BODY
- A61H3/00—Appliances for aiding patients or disabled persons to walk about
- A61H2003/005—Appliances for aiding patients or disabled persons to walk about with knee, leg or stump rests
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61H—PHYSICAL THERAPY APPARATUS, e.g. DEVICES FOR LOCATING OR STIMULATING REFLEX POINTS IN THE BODY; ARTIFICIAL RESPIRATION; MASSAGE; BATHING DEVICES FOR SPECIAL THERAPEUTIC OR HYGIENIC PURPOSES OR SPECIFIC PARTS OF THE BODY
- A61H3/00—Appliances for aiding patients or disabled persons to walk about
- A61H2003/007—Appliances for aiding patients or disabled persons to walk about secured to the patient, e.g. with belts
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61H—PHYSICAL THERAPY APPARATUS, e.g. DEVICES FOR LOCATING OR STIMULATING REFLEX POINTS IN THE BODY; ARTIFICIAL RESPIRATION; MASSAGE; BATHING DEVICES FOR SPECIAL THERAPEUTIC OR HYGIENIC PURPOSES OR SPECIFIC PARTS OF THE BODY
- A61H2201/00—Characteristics of apparatus not provided for in the preceding codes
- A61H2201/16—Physical interface with patient
- A61H2201/1602—Physical interface with patient kind of interface, e.g. head rest, knee support or lumbar support
- A61H2201/164—Feet or leg, e.g. pedal
- A61H2201/1642—Holding means therefor
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61H—PHYSICAL THERAPY APPARATUS, e.g. DEVICES FOR LOCATING OR STIMULATING REFLEX POINTS IN THE BODY; ARTIFICIAL RESPIRATION; MASSAGE; BATHING DEVICES FOR SPECIAL THERAPEUTIC OR HYGIENIC PURPOSES OR SPECIFIC PARTS OF THE BODY
- A61H2201/00—Characteristics of apparatus not provided for in the preceding codes
- A61H2201/16—Physical interface with patient
- A61H2201/1602—Physical interface with patient kind of interface, e.g. head rest, knee support or lumbar support
- A61H2201/165—Wearable interfaces
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61H—PHYSICAL THERAPY APPARATUS, e.g. DEVICES FOR LOCATING OR STIMULATING REFLEX POINTS IN THE BODY; ARTIFICIAL RESPIRATION; MASSAGE; BATHING DEVICES FOR SPECIAL THERAPEUTIC OR HYGIENIC PURPOSES OR SPECIFIC PARTS OF THE BODY
- A61H2230/00—Measuring physical parameters of the user
- A61H2230/80—Weight
- A61H2230/805—Weight used as a control parameter for the apparatus
Definitions
- the present invention relates to a load determination method, and more specifically, to a load determination method to determine whether a leg part is in a loaded state, which is a ground-contact state, or is in an unloaded state, which is an idling leg state based on a load acting on the leg part of the user.
- a load determination method is employed, for example, in a wearable robot that assists the gait of a user, and in order to provide this assist, the load determination method determines whether the leg part is in a loaded state, which is a ground-contact state, or in an unloaded state, which is an idling leg state.
- a typical load determination method determines whether a previous determination result is the loaded state (S101).
- the load acting on the leg part e.g., sole
- S102 a threshold at which it is determined that the state of the leg part has been switched from the loaded state to the unloaded state
- the load acting on the leg part of the user is smaller than the unload determination threshold (YES in S102)
- the load acting on the leg part of the user is smaller than the unload determination threshold (YES in S102)
- the leg part is in the unloaded state (S103).
- the load acting on the leg part of the user is equal to or larger than the unload determination threshold (NO in S102)
- the loaded state is being kept (S104).
- Japanese Unexamined Patent Application Publication No. 2014-184086 discloses a walking assist device that determines an assist force applied to right and left knee joints based on the load acting on the right and left soles of the user.
- the loaded state is erroneously determined to be the unloaded state.
- the present invention has been made in order to solve the above problem and aims to provide a load determination method capable of suppressing an erroneous determination when it is being determined whether a leg part of a user is in a loaded state or not.
- a load determination method determines, based on a load acting on a leg part of a user that is detected, whether the leg part is in a loaded state, which is a ground-contact state, or an unloaded state, which is an idling leg state, in which the load determination method determines that the leg part is in the loaded state instead of determining that the leg part is in the unloaded state even when the load acting on the leg part of the user that is detected becomes smaller than a threshold at which it is determined that the state of the leg part has been switched from the loaded state to the unloaded state within a predetermined period after it is determined that the state of the leg part has been switched from the unloaded state to the loaded state.
- the load acting on the leg part of the user is preferably detected by a uniaxial load sensor.
- Fig. 1 is a diagram schematically showing a state in which a wearable robot is attacked to a knee joint of a user according to this embodiment.
- Fig. 2 is a block diagram showing a control system of the wearable robot according to this embodiment.
- Fig. 3 is a diagram showing an arrangement of load sensors of a load detection unit.
- a wearable robot 1 includes a first link 2, a second link 3, a foot part 4, an actuator 5, an angle detection unit 6, a load detection unit 7, and a control device 8.
- the first link 2 is fixed to the thigh part of the user through a fixing band 2a.
- the second link 3 is fixed to the shank part of the user through a fixing band 3a.
- a lower end part of the first link 2 and an upper end part of the second link 3 are coupled to each other through a shaft 9 extending in the horizontal direction of the wearable robot 1 and the first link 2 and the second link 3 can be relatively rotated around the shaft 9.
- the foot part 4 includes a sole supporting part 4a on which the sole of the user is placed.
- a protruding part 4b that protrudes from the sole supporting part 4a and the lower end part of the second link 3 are coupled to each other through the shaft 10 that extends in the horizontal direction of the wearable robot 1 and the foot part 4 and the second link 3 can be rotated around the shaft 10 relative to each other.
- the actuator 5 includes, for example, a motor, a reduction gear and the like, and the driving force of the motor is transmitted to the shaft 9 via the reduction gear so that the first link 2 and the third link 3 are rotated relative to each other.
- the angle detection unit 6 is provided, for example, in the actuator 5 and detects a rotation angle of the first link 2 with respect to the second link 3 to output a detection signal to the control device 8.
- a typical angle detection device can be used as the angle detection unit 6.
- the angle detection unit 6 may be, for example, an encoder.
- the load detection unit 7 includes a plurality of load sensors 7a provided on the upper surface of the sole supporting part 4a of the foot part 4.
- the load detection unit 7 detects the total load acting on the sole of the user and outputs a detection signal to the control device 8.
- a uniaxial load sensor is used as the load sensor 7a.
- right and left load sensors 7a are provided spaced apart from each other in each of a region of the sole supporting part 4a which the ball parts of the sole of the user contact and a region of the sole supporting part 4a which the heel part of the sole of the user contacts.
- the control device 8 executes a load determination program 11 or a control program 12 and controls the actuator 5 based on the detection signals input from the angle detection unit 6 and the load detection unit 7.
- the load determination program 11 includes a total load calculation unit 13 and a load determination unit 14.
- the total load calculation unit 13 causes the control device 8 to execute processing for calculating the total load acting on the sole of the user based on the detection signal input from the load detection unit 7.
- the load determination unit 14 causes the control device 8 to execute processing for determining whether the leg part of the user is in a loaded state, which is a ground-contact state, or in an unloaded state, which is an idling leg state based on the total load acting on the sole of the user detected by the load detection unit 7.
- the load determination unit 14 causes the control device 8 to carry out processing for determining that the leg part is in the loaded state instead of determining that the leg part is in the unloaded state.
- the control program 12 is a program for executing a normal assist operation and causes the control device 8 to execute processing for controlling the actuator 5 so that the rotation angle of the first link 2 with respect to the second link 3 becomes a predetermined angle based on the detection signal input from the angle detection unit 6.
- Fig. 4 is a diagram showing a process flow of the load determination program according to this embodiment.
- Fig. 5 is a diagram showing a relation between the total load acting on the sole and time and a determination result.
- the control device 8 determines whether the previous determination result is the loaded state (S1).
- the control device 8 determines whether the elapsed time after it is determined that the leg part is in the loaded state exceeds the unload determination cancel time (S2). For example, the period from the time at which the user's heel strikes the ground to the time at which the sole completely contacts the ground may be sampled and the unload determination cancel time may be appropriately set based on the result of the sampling.
- the period from the time at which the user's heel strikes the ground to the time at which the user's heel leaves the ground may be sampled and the unload determination cancel time may be appropriately set based on the result of the sampling.
- the control device 8 calculates the total load acting on the sole of the user based on the detection signal from the load detection unit 7 to determine whether the total load that is calculated is smaller than the unload determination threshold (S3).
- the control device 8 determines that the leg part is in the loaded state (S4).
- the control device 8 executes a normal assist control in a state in which the leg part of the user is in the standing leg state.
- the control device 8 determines that the leg part is in the unloaded state (S5). When it is determined that the leg part is in the unloaded state, the control device 8 executes the normal assist control in a state in which the leg part of the user is in the idling leg state.
- the control device 8 determines that the leg part is in the loaded state (S4). When it is determined that the leg part is in the loaded state, the control device 8 executes the normal assist control in a state in which the leg part of the user is in the standing leg state.
- the control device 8 calculates the total load acting on the sole of the user based on the detection signal from the load detection unit 7 to determine whether the total load that is calculated is larger than a threshold at which it is determined that the state of the leg part has been switched from the unloaded state to the loaded state (load determination threshold) (S6).
- the control device 8 determines that the leg part is in the loaded state (S4). When it is determined that the leg part is in the loaded state, the control device 8 executes the normal assist control in a state in which the leg part of the user is in the standing leg state.
- the control device 8 determines that the leg part is in the unloaded state (S5). When it is determined that the leg part is in the unloaded state, the control device 8 executes the normal assist control in a state in which the leg part of the user is in the idling leg state.
- the state of the leg part is determined to be the loaded state even when the total load acting on the sole of the user detected by the load detection unit 7 becomes smaller than the unload determination threshold for a moment. Accordingly, even when the detection accuracy of the load detection unit 7 decreases, for example, due to a gait of the user for a moment and the total load that has been detected is smaller than the unload determination threshold, it is possible to suppress an erroneous determination that the state of the leg part has been switched to the unloaded state.
- the detection accuracy of the load detection unit 7 may decrease, for example, due to a gait of the user.
- a multiple-axis load sensor is used as the load sensor, it is possible to suppress the decrease in the detection accuracy of the load detection unit 7.
- the multiple-axis load sensor is more expensive and larger in size than the uniaxial load sensor. According to the load determination method according to this embodiment, it is possible to prevent the erroneous determination that the state of the leg part has been switched to the unloaded state even when the uniaxial load sensor is used as the load sensor, whereby it is possible to manufacture the wearable robot 1 inexpensively and to reduce the size of the wearable robot 1.
- Fig. 6 is a diagram showing a process flow of a load determination program according to this embodiment.
- the process to determine whether the elapsed time after it is determined that the leg part is in the loaded state exceeds the unload determination cancel time and the process to determine whether the total load that is calculated is smaller than the unload determination threshold may mutually replace each other.
- Fig. 7 is a diagram showing a process flow of a load determination program according to this embodiment. As shown in Fig. 7 , compared to the process flow of the load determination program according to the first embodiment, in the process flow of the load determination program according to the third embodiment, the process to determine whether the elapsed time after it is determined that the leg part is in the loaded state exceeds the unload determination cancel time and the process to determine whether the total load that is calculated is smaller than the unload determination threshold can be executed in one process.
- leg part of the user is in the loaded state or the unloaded state based on the load detected by the load detection unit 7 installed in the wearable robot in the above embodiments.
- the load detection unit 7 installed in the wearable robot in the above embodiments.
- Fig. 8 is a diagram schematically showing the treadmill used in the load determination method according to this embodiment.
- Fig. 9 is a block diagram showing a control system to execute the load determination method according to this embodiment. Since the load determination method according to this embodiment is similar to that in the first embodiment, the detailed descriptions will be omitted.
- a treadmill 41 includes rollers 43 and 44 arranged in respective cut-out parts formed in the front and back parts of a frame 42 and endless belts 45 and 46 arranged in the right and left parts of the treadmill 41 in parallel are passed to the rollers 43 and 44 in such a way that the frame 42 is contained inside the endless belts 45 and 46.
- the rotational driving force is transmitted from a drive apparatus (not shown) to at least one of the rollers 43 and 44, which turns the endless belts 45 and 46.
- a plurality of load sensors 47a are provided on the upper surface of the frame 42 of the treadmill 41 as the load detection unit 47 so that the plurality of load sensors 47a are opposed to the inner peripheral surfaces of the endless belts 45 and 46. As shown in Fig. 9 , detection signals from the respective load sensors 47a are output to the control device 8 of the wearable robot by a wire or wirelessly.
- the load acting on each of the endless belts 45 and 46 may be detected by the load sensors 47a.
- the control device 8 calculates, based on the detection signals input from the load sensors 47a, the total load acting on the left sole of the user and the total load acting on the right sole of the user.
- the control device 8 determines, based on the total load acting on the left sole of the user that is calculated or the total load acting on the right sole of the user that is calculated, whether at least the leg part of the user on the side on which the wearable robot is attached is in the loaded state or the unloaded state.
- the present invention is not limited to this case. For example, it may be determined whether the leg part of the user is in the loaded state or the unloaded state based on whether the integral value of the load in the elapsed time after it is determined that the leg part is in the loaded state exceeds the threshold at which it is determined that the state of the leg part has been switched from the loaded state to the unloaded state.
- the determination of the load in the leg part is performed using the plurality of load sensors in the above embodiments, the determination of the load in the leg part may be performed using one load sensor.
- control method is achieved using software resources in the above embodiments, it may be achieved using hardware resources.
- a load determination method that determines, based on a load acting on a leg part of a user that is detected, whether the leg part is in a loaded state, which is a ground-contact state, or an unloaded state, which is an idling leg state, in which the load determination method determines that the leg part is in the loaded state instead of determining that the leg part is in the unloaded state even when the load acting on the leg part of the user that is detected becomes smaller than a threshold at which it is determined that the state of the leg part has been switched from the loaded state to the unloaded state within a predetermined period after it is determined that the state of the leg part has been switched from the unloaded state to the loaded state.
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- Robotics (AREA)
- Mechanical Engineering (AREA)
- Heart & Thoracic Surgery (AREA)
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- Oral & Maxillofacial Surgery (AREA)
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- Rehabilitation Therapy (AREA)
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Abstract
Description
- The present invention relates to a load determination method, and more specifically, to a load determination method to determine whether a leg part is in a loaded state, which is a ground-contact state, or is in an unloaded state, which is an idling leg state based on a load acting on the leg part of the user.
- A load determination method is employed, for example, in a wearable robot that assists the gait of a user, and in order to provide this assist, the load determination method determines whether the leg part is in a loaded state, which is a ground-contact state, or in an unloaded state, which is an idling leg state.
- As shown in
Fig. 10 , a typical load determination method determines whether a previous determination result is the loaded state (S101). When it is determined that the previous determination result is the loaded state (YES in S101), it is determined whether the load acting on the leg part (e.g., sole) of the user is smaller than a threshold at which it is determined that the state of the leg part has been switched from the loaded state to the unloaded state (unload determination threshold) (S102). When the load acting on the leg part of the user is smaller than the unload determination threshold (YES in S102), it is determined that the leg part is in the unloaded state (S103). On the other hand, when the load acting on the leg part of the user is equal to or larger than the unload determination threshold (NO in S102), it is determined that the loaded state is being kept (S104). - When the previous determination result is the unloaded state (NO in S101), it is determined whether the load acting on the leg part of the user is larger than the threshold at which it is determined that the state of the leg part has been switched from the unloaded state to the loaded state (load determination threshold) (S105). When the load acting on the leg part of the user is larger than the load determination threshold (YES in S105), it is determined that the leg part is in the loaded state (S104). On the other hand, when the load acting on the leg part of the user is equal to or smaller than the load determination threshold (NO in S105), it is determined that the unloaded state is being kept (S103).
- Japanese Unexamined Patent Application Publication No.
2014-184086 - According to the typical load determination method, when the detection accuracy of the load acting on the leg part of the user decreases according to the way the user puts the heel thereof on the ground during a walk and the load that is detected becomes smaller than the unload determination threshold even for a moment as shown in
Fig. 11 , the loaded state is erroneously determined to be the unloaded state. - The present invention has been made in order to solve the above problem and aims to provide a load determination method capable of suppressing an erroneous determination when it is being determined whether a leg part of a user is in a loaded state or not.
- A load determination method according to one embodiment of the present invention determines, based on a load acting on a leg part of a user that is detected, whether the leg part is in a loaded state, which is a ground-contact state, or an unloaded state, which is an idling leg state, in which the load determination method determines that the leg part is in the loaded state instead of determining that the leg part is in the unloaded state even when the load acting on the leg part of the user that is detected becomes smaller than a threshold at which it is determined that the state of the leg part has been switched from the loaded state to the unloaded state within a predetermined period after it is determined that the state of the leg part has been switched from the unloaded state to the loaded state.
- In the above load determination method, the load acting on the leg part of the user is preferably detected by a uniaxial load sensor.
- As described above, it is possible to provide a load determination method capable of suppressing an erroneous determination when it is being determined whether a leg part of a user is in a loaded state or not.
- The above and other objects, features and advantages of the present invention will become more fully understood from the detailed description given hereinbelow and the accompanying drawings which are given by way of illustration only, and thus are not to be considered as limiting the present invention.
-
-
Fig. 1 is a diagram schematically showing a state in which a wearable robot is attached to a knee joint of a user according to a first embodiment; -
Fig. 2 is a block diagram showing a control system of the wearable robot according to the first embodiment; -
Fig. 3 is a diagram showing an arrangement of load sensors of a load detection unit; -
Fig. 4 is a diagram showing a process flow of a load determination program according to the first embodiment; -
Fig. 5 is a diagram showing a relation between a total load acting on a sole and time and a determination result; -
Fig. 6 is a diagram showing a process flow of a load determination program according to a second embodiment; -
Fig. 7 is a diagram showing a process flow of a load determination program according to a third embodiment; -
Fig. 8 is a diagram schematically showing a treadmill used in a load determination method according to a fourth embodiment; -
Fig. 9 is a block diagram showing a control system to execute the load determination method according to the fourth embodiment; -
Fig. 10 is a flowchart showing a load determination method according to a related art;
and -
Fig. 11 is a diagram showing a relation between a total load acting on a sole and time and a determination result according to the related art. - Hereinafter, with reference to the accompanying drawings, best modes to achieve the present invention will be described. It should be noted that the present invention is not limited to the following embodiments. Further, for the sake of clarity of the description, the following description and the drawings are simplified as appropriate.
- First, the basic structure of a wearable robot in which a load determination method according to this embodiment is executed will be described.
Fig. 1 is a diagram schematically showing a state in which a wearable robot is attacked to a knee joint of a user according to this embodiment.Fig. 2 is a block diagram showing a control system of the wearable robot according to this embodiment.Fig. 3 is a diagram showing an arrangement of load sensors of a load detection unit. - As shown in
Figs. 1 and2 , awearable robot 1 includes afirst link 2, asecond link 3, afoot part 4, anactuator 5, anangle detection unit 6, aload detection unit 7, and acontrol device 8. Thefirst link 2 is fixed to the thigh part of the user through afixing band 2a. Thesecond link 3 is fixed to the shank part of the user through afixing band 3a. A lower end part of thefirst link 2 and an upper end part of thesecond link 3 are coupled to each other through ashaft 9 extending in the horizontal direction of thewearable robot 1 and thefirst link 2 and thesecond link 3 can be relatively rotated around theshaft 9. - The
foot part 4 includes a sole supportingpart 4a on which the sole of the user is placed. Aprotruding part 4b that protrudes from thesole supporting part 4a and the lower end part of thesecond link 3 are coupled to each other through theshaft 10 that extends in the horizontal direction of thewearable robot 1 and thefoot part 4 and thesecond link 3 can be rotated around theshaft 10 relative to each other. - The
actuator 5 includes, for example, a motor, a reduction gear and the like, and the driving force of the motor is transmitted to theshaft 9 via the reduction gear so that thefirst link 2 and thethird link 3 are rotated relative to each other. - The
angle detection unit 6 is provided, for example, in theactuator 5 and detects a rotation angle of thefirst link 2 with respect to thesecond link 3 to output a detection signal to thecontrol device 8. A typical angle detection device can be used as theangle detection unit 6. Theangle detection unit 6 may be, for example, an encoder. - The
load detection unit 7 includes a plurality ofload sensors 7a provided on the upper surface of thesole supporting part 4a of thefoot part 4. Theload detection unit 7 detects the total load acting on the sole of the user and outputs a detection signal to thecontrol device 8. In this embodiment, a uniaxial load sensor is used as theload sensor 7a. As shown inFig. 3 , right andleft load sensors 7a are provided spaced apart from each other in each of a region of thesole supporting part 4a which the ball parts of the sole of the user contact and a region of thesole supporting part 4a which the heel part of the sole of the user contacts. - The
control device 8 executes aload determination program 11 or acontrol program 12 and controls theactuator 5 based on the detection signals input from theangle detection unit 6 and theload detection unit 7. - The
load determination program 11 includes a totalload calculation unit 13 and aload determination unit 14. The totalload calculation unit 13 causes thecontrol device 8 to execute processing for calculating the total load acting on the sole of the user based on the detection signal input from theload detection unit 7. - While the details of the operation of the
load determination unit 14 will be described later, theload determination unit 14 causes thecontrol device 8 to execute processing for determining whether the leg part of the user is in a loaded state, which is a ground-contact state, or in an unloaded state, which is an idling leg state based on the total load acting on the sole of the user detected by theload detection unit 7. In a predetermined period of time (unload determination cancel time) after it is determined that the state of the leg part has been switched from the unloaded state to the loaded state (that is, the elapsed time after it is determined that the leg part is in the loaded state), even when the total load acting on the sole is smaller than a threshold at which it is determined that the state of the leg part has been switched from the loaded state to the unloaded state (unload determination threshold), theload determination unit 14 causes thecontrol device 8 to carry out processing for determining that the leg part is in the loaded state instead of determining that the leg part is in the unloaded state. - The
control program 12 is a program for executing a normal assist operation and causes thecontrol device 8 to execute processing for controlling theactuator 5 so that the rotation angle of thefirst link 2 with respect to thesecond link 3 becomes a predetermined angle based on the detection signal input from theangle detection unit 6. - Next, a process flow of the
load determination program 11 according to this embodiment will be described.Fig. 4 is a diagram showing a process flow of the load determination program according to this embodiment.Fig. 5 is a diagram showing a relation between the total load acting on the sole and time and a determination result. - First, as shown in
Fig. 4 , thecontrol device 8 determines whether the previous determination result is the loaded state (S1). When the previous determination result is the loaded state (YES in S1), thecontrol device 8 determines whether the elapsed time after it is determined that the leg part is in the loaded state exceeds the unload determination cancel time (S2). For example, the period from the time at which the user's heel strikes the ground to the time at which the sole completely contacts the ground may be sampled and the unload determination cancel time may be appropriately set based on the result of the sampling. Alternatively, for example, in a normal gait, the period from the time at which the user's heel strikes the ground to the time at which the user's heel leaves the ground may be sampled and the unload determination cancel time may be appropriately set based on the result of the sampling. - When the elapsed time after it is determined that the leg part is in the loaded state exceeds the unload determination cancel time (YES in S2), the
control device 8 calculates the total load acting on the sole of the user based on the detection signal from theload detection unit 7 to determine whether the total load that is calculated is smaller than the unload determination threshold (S3). - On the other hand, when the elapsed time after it is determined that the leg part is in the loaded state is equal to or lower than the unload determination cancel time (NO in S2), the
control device 8 determines that the leg part is in the loaded state (S4). When it is determined that the leg part is in the loaded state, thecontrol device 8 executes a normal assist control in a state in which the leg part of the user is in the standing leg state. - When the total load that is calculated is smaller than the unload determination threshold (YES in S3), the
control device 8 determines that the leg part is in the unloaded state (S5). When it is determined that the leg part is in the unloaded state, thecontrol device 8 executes the normal assist control in a state in which the leg part of the user is in the idling leg state. - On the other hand, when the total load that is calculated is equal to or larger than the unload determination threshold (NO in S3), the
control device 8 determines that the leg part is in the loaded state (S4). When it is determined that the leg part is in the loaded state, thecontrol device 8 executes the normal assist control in a state in which the leg part of the user is in the standing leg state. - When the previous determination result is the unloaded state (NO in S1), the
control device 8 calculates the total load acting on the sole of the user based on the detection signal from theload detection unit 7 to determine whether the total load that is calculated is larger than a threshold at which it is determined that the state of the leg part has been switched from the unloaded state to the loaded state (load determination threshold) (S6). - When the total load that is calculated is larger than the load determination threshold (YES in S6), the
control device 8 determines that the leg part is in the loaded state (S4). When it is determined that the leg part is in the loaded state, thecontrol device 8 executes the normal assist control in a state in which the leg part of the user is in the standing leg state. - On the other hand, when the total load that is calculated is equal to or smaller than the load determination threshold (NO in S6), the
control device 8 determines that the leg part is in the unloaded state (S5). When it is determined that the leg part is in the unloaded state, thecontrol device 8 executes the normal assist control in a state in which the leg part of the user is in the idling leg state. - As described above, and as shown in
Fig. 5 , until the elapsed time after it is determined that the leg part is in the loaded state exceeds the unload determination cancel time, the state of the leg part is determined to be the loaded state even when the total load acting on the sole of the user detected by theload detection unit 7 becomes smaller than the unload determination threshold for a moment. Accordingly, even when the detection accuracy of theload detection unit 7 decreases, for example, due to a gait of the user for a moment and the total load that has been detected is smaller than the unload determination threshold, it is possible to suppress an erroneous determination that the state of the leg part has been switched to the unloaded state. - As described above, when the uniaxial load sensor is used as the load sensor, the detection accuracy of the
load detection unit 7 may decrease, for example, due to a gait of the user. When a multiple-axis load sensor is used as the load sensor, it is possible to suppress the decrease in the detection accuracy of theload detection unit 7. However, the multiple-axis load sensor is more expensive and larger in size than the uniaxial load sensor. According to the load determination method according to this embodiment, it is possible to prevent the erroneous determination that the state of the leg part has been switched to the unloaded state even when the uniaxial load sensor is used as the load sensor, whereby it is possible to manufacture thewearable robot 1 inexpensively and to reduce the size of thewearable robot 1. -
Fig. 6 is a diagram showing a process flow of a load determination program according to this embodiment. As shown inFig. 6 , compared to the process flow of the load determination program according to the first embodiment, in the process flow of the load determination program according to the second embodiment, the process to determine whether the elapsed time after it is determined that the leg part is in the loaded state exceeds the unload determination cancel time and the process to determine whether the total load that is calculated is smaller than the unload determination threshold may mutually replace each other. - That is, in this embodiment, after the process to determine whether the total load that is calculated is smaller than the unload determination threshold is carried out (S21), the process to determine whether the elapsed time after it is determined that the leg part is in the loaded state exceeds the unload determination cancel time is carried out (S22).
-
Fig. 7 is a diagram showing a process flow of a load determination program according to this embodiment. As shown inFig. 7 , compared to the process flow of the load determination program according to the first embodiment, in the process flow of the load determination program according to the third embodiment, the process to determine whether the elapsed time after it is determined that the leg part is in the loaded state exceeds the unload determination cancel time and the process to determine whether the total load that is calculated is smaller than the unload determination threshold can be executed in one process. - That is, in this embodiment, it is determined whether the total load that is calculated is smaller than the unload determination threshold and the elapsed time after it is determined that the leg part is in the loaded state exceeds the unload determination cancel time (S31). When both of the conditions are satisfied (YES in S31), it is determined that the leg part is in the unloaded state (S5). When at least one of the conditions is not satisfied (NO in S31), it is determined that the leg part is in the loaded state (S4).
- It is determined whether the leg part of the user is in the loaded state or the unloaded state based on the load detected by the
load detection unit 7 installed in the wearable robot in the above embodiments. When the user conducts, for example, rehabilitation using a treadmill while wearing the wearable robot, it may be determined whether the leg part of the user is in the loaded state or the unloaded state based on the load detected in the load detection unit mounted on the treadmill. -
Fig. 8 is a diagram schematically showing the treadmill used in the load determination method according to this embodiment.Fig. 9 is a block diagram showing a control system to execute the load determination method according to this embodiment. Since the load determination method according to this embodiment is similar to that in the first embodiment, the detailed descriptions will be omitted. - As shown in
Fig. 8 , atreadmill 41 according to this embodiment includesrollers frame 42 andendless belts treadmill 41 in parallel are passed to therollers frame 42 is contained inside theendless belts rollers endless belts - A plurality of
load sensors 47a are provided on the upper surface of theframe 42 of thetreadmill 41 as theload detection unit 47 so that the plurality ofload sensors 47a are opposed to the inner peripheral surfaces of theendless belts Fig. 9 , detection signals from therespective load sensors 47a are output to thecontrol device 8 of the wearable robot by a wire or wirelessly. - Accordingly, when the user puts the left leg thereof on the
endless belt 45 and the right leg thereof on theendless belt 46, the load acting on each of theendless belts load sensors 47a. Thecontrol device 8 calculates, based on the detection signals input from theload sensors 47a, the total load acting on the left sole of the user and the total load acting on the right sole of the user. Thecontrol device 8 then determines, based on the total load acting on the left sole of the user that is calculated or the total load acting on the right sole of the user that is calculated, whether at least the leg part of the user on the side on which the wearable robot is attached is in the loaded state or the unloaded state. - While it is determined whether the leg part of the user is in the loaded state or the unloaded state based on whether the elapsed time after it is determined that the leg part is in the loaded state exceeds the unload determination cancel time in the above embodiments, the present invention is not limited to this case. For example, it may be determined whether the leg part of the user is in the loaded state or the unloaded state based on whether the integral value of the load in the elapsed time after it is determined that the leg part is in the loaded state exceeds the threshold at which it is determined that the state of the leg part has been switched from the loaded state to the unloaded state.
- While the determination of the load in the leg part is performed using the plurality of load sensors in the above embodiments, the determination of the load in the leg part may be performed using one load sensor.
- While the control method is achieved using software resources in the above embodiments, it may be achieved using hardware resources.
- From the invention thus described, it will be obvious that the embodiments of the invention may be varied in many ways. Such variations are not to be regarded as a departure from the spirit and scope of the invention, and all such modifications as would be obvious to one skilled in the art are intended for inclusion within the scope of the following claims.
- A load determination method that determines, based on a load acting on a leg part of a user that is detected, whether the leg part is in a loaded state, which is a ground-contact state, or an unloaded state, which is an idling leg state, in which the load determination method determines that the leg part is in the loaded state instead of determining that the leg part is in the unloaded state even when the load acting on the leg part of the user that is detected becomes smaller than a threshold at which it is determined that the state of the leg part has been switched from the loaded state to the unloaded state within a predetermined period after it is determined that the state of the leg part has been switched from the unloaded state to the loaded state.
Claims (2)
- A load determination method that determines, based on a load acting on a leg part of a user that is detected, whether the leg part is in a loaded state, which is a ground-contact state, or an unloaded state, which is an idling leg state,
wherein the load determination method determines that the leg part is in the loaded state instead of determining that the leg part is in the unloaded state even when the load acting on the leg part of the user that is detected becomes smaller than a threshold at which it is determined that the state of the leg part has been switched from the loaded state to the unloaded state within a predetermined period after it is determined that the state of the leg part has been switched from the unloaded state to the loaded state. - The load determination method according to Claim 1, wherein the load acting on the leg part of the user is detected by a uniaxial load sensor.
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JP2014242789A JP6483419B2 (en) | 2014-12-01 | 2014-12-01 | Load judgment method |
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EP3040168B1 EP3040168B1 (en) | 2017-11-22 |
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EP (1) | EP3040168B1 (en) |
JP (1) | JP6483419B2 (en) |
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US11307103B2 (en) | 2017-05-22 | 2022-04-19 | Ottobock Se & Co. Kgaa | Method and device for determining a mechanical load |
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JP6554996B2 (en) | 2015-08-17 | 2019-08-07 | トヨタ自動車株式会社 | Walking training apparatus and walking training method thereof |
JP6459137B2 (en) * | 2016-06-30 | 2019-01-30 | パナソニックIpマネジメント株式会社 | Walking assist device and control method |
JP7156390B2 (en) * | 2018-11-13 | 2022-10-19 | 日本電気株式会社 | LOAD REDUCTION SUPPORT DEVICE, LOAD REDUCTION SYSTEM, LOAD REDUCTION METHOD, AND PROGRAM |
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JP6483419B2 (en) | 2019-03-13 |
NO3040168T3 (en) | 2018-04-21 |
JP2016104057A (en) | 2016-06-09 |
EP3040168B1 (en) | 2017-11-22 |
US20160150999A1 (en) | 2016-06-02 |
CN105640735A (en) | 2016-06-08 |
US11051717B2 (en) | 2021-07-06 |
CN105640735B (en) | 2018-02-27 |
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